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Neurite, a finite difference large scale parallel program for the simulation of the electrical signal propagation in neurites under mechanical loading

机译:神经突,有限差分大型并行程序,用于模拟机械载荷下神经突中电信号的传播

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摘要

With the growing body of research on traumatic brain injury and spinal cord injury, computational neuroscience has recently focused its modeling efforts on neuronal functional deficits following mechanical loading. However, in most of these efforts, cell damage is generally only characterized by purely mechanistic criteria, function of quantities such as stress, strain or their corresponding rates. The modeling of functional deficits in neurites as a consequence of macroscopic mechanical insults has been rarely explored. In particular, a quantitative mechanically based model of electrophysiological impairment in neuronal cells has only very recently been proposed (Jerusalem et al., 2013). In this paper, we present the implementation details of Neurite: the finite difference parallel program used in this reference. Following the application of a macroscopic strain at a given strain rate produced by a mechanical insult, Neurite is able to simulate the resulting neuronal electrical signal propagation, and thus the corresponding functional deficits. The simulation of the coupled mechanical and electrophysiological behaviors requires computational expensive calculations that increase in complexity as the network of the simulated cells grows. The solvers implemented in Neurite-explicit and implicit-were therefore parallelized using graphics processing units in order to reduce the burden of the simulation costs of large scale scenarios. Cable Theory and Hodgkin-Huxley models were implemented to account for the electrophysiological passive and active regions of a neurite, respectively, whereas a coupled mechanical model accounting for the neurite mechanical behavior within its surrounding medium was adopted as a link between lectrophysiology and mechanics (Jerusalem et al., 2013). This paper provides the details of the parallel implementation of Neurite, along with three different application examples: a long myelinated axon, a segmented dendritic tree, and a damaged axon. The capabilities of the program to deal with large scale scenarios, segmented neuronal structures, and functional deficits under mechanical loading are specifically highlighted.
机译:随着关于创伤性脑损伤和脊髓损伤的研究不断发展,计算神经科学最近将其建模工作集中在机械负荷后的神经元功能缺陷上。然而,在大多数这些努力中,细胞损伤通常仅以纯粹的机械标准,诸如压力,应变或其相应速率之类的量的函数为特征。由于宏观机械损伤导致的神经突功能缺损的模型研究很少。特别地,仅在最近才提出了基于定量的基于机械的神经元细胞电生理损伤模型(Jerusalem等人,2013)。在本文中,我们介绍了Neurite的实现细节:此参考中使用的有限差分并行程序。在施加机械损伤产生的给定应变率下的宏观应变后,Neurite能够模拟所得的神经元电信号传播,从而模拟相应的功能缺陷。机械和电生理行为耦合的模拟需要计算量大的计算,随着模拟细胞网络的增长,其复杂性也随之增加。因此,使用图形处理单元将以Neurite显式和隐式实现的求解器并行化,以减轻大规模方案的仿真成本负担。实施电缆理论模型和Hodgkin-Huxley模型分别解释了神经突的电生理被动和主动区域,而考虑其周围介质中神经突力学行为的耦合力学模型被用作电生理学和力学之间的联系(耶路撒冷等人,2013年)。本文提供了Neurite并行实现的详细信息,以及三个不同的应用示例:长有髓的轴突,分段的树突状树和受损的轴突。该程序处理大型场景,分段的神经元结构和机械负荷下的功能缺陷的能力得到了特别强调。

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